Please use this identifier to cite or link to this item: https://doi.org/10.22203/eCM.v041a16
Title: PULSED ELECTROMAGNETIC FIELDS SYNERGIZE WITH GRAPHENE TO ENHANCE DENTAL PULP STEM CELL-DERIVED NEUROGENESIS BY SELECTIVELY TARGETING TRPC1 CHANNELS
Authors: Madanagopal, TT
Tai, YK 
Lim, SH 
Fong, CHH
Cao, T 
Rosa, V 
Franco-Obregon, A 
Keywords: Science & Technology
Life Sciences & Biomedicine
Technology
Cell & Tissue Engineering
Engineering, Biomedical
Materials Science, Biomaterials
Orthopedics
Cell Biology
Engineering
Materials Science
Pulsed electromagnetic fields
mitohormesis
tissue engineering
nanomaterial
TRPM8 CHANNEL
DIFFERENTIATION
BIOMATERIALS
MUTATIONS
APOPTOSIS
NEURONS
GROWTH
Issue Date: 1-Jan-2021
Publisher: AO RESEARCH INSTITUTE DAVOS-ARI
Citation: Madanagopal, TT, Tai, YK, Lim, SH, Fong, CHH, Cao, T, Rosa, V, Franco-Obregon, A (2021-01-01). PULSED ELECTROMAGNETIC FIELDS SYNERGIZE WITH GRAPHENE TO ENHANCE DENTAL PULP STEM CELL-DERIVED NEUROGENESIS BY SELECTIVELY TARGETING TRPC1 CHANNELS. EUROPEAN CELLS & MATERIALS 41 : 216-232. ScholarBank@NUS Repository. https://doi.org/10.22203/eCM.v041a16
Abstract: Conventional root canal treatment replaces the infected pulp with defined materials. Alternative cell-based tissue engineering strategies aim to regenerate a fully functional pulp within the root canal. Despite recent advances in this area, however, the regeneration of an innervated pulp remains a major challenge in the field. Both graphene (2DG) and pulsed electromagnetic fields (PEMFs) independently have been shown to promote diverse cellular developmental programs. The present study showed that 2DG promoted the neurogenic induction of human dental pulp stem cells (hDPSCs) by upregulating and accelerating the expression of mature neuronal markers. Notably, 2DG induced the highest expression of transient receptor potential canonical cation channel type 1 (TRPC1) during early neurogenesis. As brief PEMF exposure promotes in vitro differentiation by activating a TRPC1-mitochondrial axis, an opportunity to combine 2DG with developmentally targeted PEMF exposure for synergistic effects was realizable. Neurogenic gene expression, neurotransmitter release, and reactive oxygen species (ROS) production were greatly enhanced by a brief (10 min) and low amplitude (2 mT) PEMF exposure timed to coincide with the highest TRPC1 expression from hDPSCs on 2DG. In contrast, hDPSCs on glass were less responsive to PEMF exposure. The capacity of PEMFs to promote neurogenesis was precluded by the administration of penicillin/streptomycin, mirroring previous studies demonstrating that aminoglycoside antibiotics block TRPC1-mediated calcium entry and verifying the contribution of TRPC1 in this form of magnetoreception. Hence, graphene created a more conducive environment for subsequent PEMF-stimulated neurogenic induction of hDPSCs through their mutual capacity to activate TRPC1with subsequent ROS production.
Source Title: EUROPEAN CELLS & MATERIALS
URI: https://scholarbank.nus.edu.sg/handle/10635/193221
ISSN: 14732262
14732262
DOI: 10.22203/eCM.v041a16
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